Key Laboratory for Green Chemical Technology of Ministry of Education, School of Chemical Engineering and Technology, Tianjin University , Tianjin 300072, China.
Collaborative Innovation Center of Chemical Science and Engineering (Tianjin) , Tianjin 300072, China.
ACS Appl Mater Interfaces. 2016 Mar;8(12):8247-56. doi: 10.1021/acsami.5b12876. Epub 2016 Mar 15.
Graphene oxide (GO) is an emerging kind of building block for advanced membranes with tunable passageway for water molecules. To synergistically manipulate the channel and surface structures/properties of GO-based membranes, the different building blocks are combined and the specific interfacial interactions are designed in this study. With vacuum-assisted filtration self-assembly, palygorskite nanorods are intercalated into adjacent GO nanosheets, and GO nanosheets are assembled into laminate structures through π-π stacking and cation cross-linking. The palygorskite nanorods in the free-standing GOP nanohybrid membranes take a 3-fold role, rendering enlarged mass transfer channels, elevating hydration capacity, and creating hierarchical nanostructures of membrane surfaces. Accordingly, the permeate fluxes from 267 L/(m(2) h) for GO membrane to 1867 L/(m(2) h) for GOP membrane. The hydration capacity and hierarchical nanostructures synergistically endow GOP membranes with underwater superoleophobic and low oil-adhesive water/membrane interfaces. Moreover, by rationally imparting chemical and physical joint defense mechanisms, the GOP membranes exhibit outstanding separation performance and antifouling properties for various oil-in-water emulsion systems (with different concentration, pH, or oil species). The high water permeability, high separation efficiency, as well as superior anti-oil-fouling properties of GOP membranes enlighten the great prospects of graphene-based nanostructured materials in water purification and wastewater treatment.
氧化石墨烯(GO)是一种新兴的用于高级膜的构建模块,具有可调节水分子通道的特性。为了协同调控基于 GO 的膜的通道和表面结构/性能,在本研究中组合了不同的构建模块并设计了特定的界面相互作用。通过真空辅助过滤自组装,坡缕石纳米棒被插入相邻的 GO 纳米片之间,GO 纳米片通过π-π 堆积和阳离子交联组装成层状结构。在独立的 GOP 纳米杂化膜中,坡缕石纳米棒起到了三重作用,扩大了传质通道,提高了水合能力,并在膜表面形成了分级纳米结构。因此,GO 膜的渗透通量从 267 L/(m^2·h)增加到 GOP 膜的 1867 L/(m^2·h)。水合能力和分级纳米结构协同赋予 GOP 膜水下超疏油性和低油粘性水/膜界面。此外,通过合理赋予化学和物理联合防御机制,GOP 膜在各种水包油乳液体系(具有不同浓度、pH 值或油种类)中表现出出色的分离性能和抗污染性能。GOP 膜具有高水透过率、高分离效率以及优异的抗油污染性能,为基于石墨烯的纳米结构化材料在水净化和废水处理中的应用前景带来了启示。